Metastable bound states of the quasi–bimagnetoexcitons in the lowest Landau levels approximation
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PODLESNY, Igor, ZUBAC, Ion, HOANG, Cam Ngoc, LIBERMAN, Michael. Metastable bound states of the quasi–bimagnetoexcitons in the lowest Landau levels approximation. In: Physica E: Low-Dimensional Systems and Nanostructures, 2020, nr. 115, p. 0. ISSN -. DOI: https://doi.org/10.1016/j.physe.2019.113638
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Physica E: Low-Dimensional Systems and Nanostructures
Numărul 115 / 2020 / ISSN - /ISSNe 1386-9477

Metastable bound states of the quasi–bimagnetoexcitons in the lowest Landau levels approximation

DOI:https://doi.org/10.1016/j.physe.2019.113638

Pag. 0-0

Podlesny Igor1, Zubac Ion1, Hoang Cam Ngoc2, Liberman Michael3
 
1 Institute of Applied Physics,
2 Institute of Physics, Vietnam Academy of Science and Technology,
3 Nordic Institute for Theoretical Physics (NORDITA) KTH
 
 
Disponibil în IBN: 2 octombrie 2019


Rezumat

Four different spin structures of two electrons and of two holes situated on the lowest Landau levels (LLLs) are taken into account to investigate possible bound states of the two-dimensional magnetic biexciton formed of two magnetoexcitons with opposite wave vectors and antiparallel dipole moments. The singlet and triplet states of the spins of two electrons and of two holes separately, as well as of two para- and two ortho-magnetoexcitons are considered. The general expressions describing the binding energy of the bound states and the normalization conditions characterized by the effective spin parameter η=±1,±1/2 for the corresponding wave functions are derived. The most favorable of the four considered spin configurations happened to be the triplet-triplet spin structure of two electrons and of two holes. In its frame a metastable bound state with activation barrier comparable with two ionization potentials of the magnetoexciton is revealed.

Cuvinte-cheie
semiconductor, exciton, magnetic field, interaction